Cellular Self-assembly

Cellular self-assembly is the spontaneous organization of individual cells into coordinated structures without requiring a predefined external scaffold, making it central to how biological form emerges. It occurs through local interactions, including cell adhesion, differential motility, cytoskeletal remodeling, and chemical signaling, which collectively generate tissue-level patterns and boundaries. In developmental biology, these processes help explain morphogenesis, tissue compartmentalization, and the formation of organ-like structures from initially disordered cell populations. Studying cellular self-assembly also supports organoid development, tissue engineering, and regenerative medicine by revealing how cells construct functional architectures and how disrupted interactions may contribute to developmental disorders.

Cellular Self-assembly - Related Videos

Research

JoVE Journal - Biology
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Assembly, Loading, and Alignment of an Analytical Ultracentrifuge Sample Cell

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Cited by 21 •

2009

The analytical ultracentrifuge (AUC) sample cell holds sample and reference buffer and during experiments and is exposed to high vacuum and rotor speeds up to 60,000 rpm. This video will demonstrate the rigorous attention to detail necessary for assembly, loading and alignment of this very important component of an AUC experiment.

Directed Cellular Self-Assembly to Fabricate Cell-Derived Tissue Rings for Biomechanical Analysis and Tissue Engineering

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Cited by 39 •

2011

This article outlines a versatile method to create cell-derived tissue rings by cellular self-assembly. Smooth muscle cells seeded into ring-shaped agarose wells aggregate and contract to form robust three-dimensional (3D) tissues within 7 days. Millimeter-scale tissue rings are conducive to mechanical testing and serve as building blocks for tissue assembly.

Research

JoVE Journal - Biochemistry
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Manipulating Living Cells to Construct Stable 3D Cellular Assembly Without Artificial Scaffold

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Cited by 6 •

2018

We demonstrate a novel method for constructing a single-cell-based 3-dimensional (3D) assembly without an artificial scaffold.

High-resolution Fiber-optic Microendoscopy for in situ Cellular Imaging

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Cited by 84 •

2011

In many biological and clinical situations it is advantageous to study cellular processes as they evolve in their native microenvironment. Here we describe the assembly and use of a low-cost fiber-optic microscope which can provide real time imaging in cell culture, animal studies, and clinical patient studies.

Education

JoVE Lab Manual - Biology

Cellular Respiration - Concepts

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2019

Autotrophs and Heterotrophs Living organisms require a continuous input of energy to maintain cellular and organismal functions such as growth, repair, movement, defense, and reproduction. Cells can only use chemical energy to fuel their functions, therefore they need to harvest energy from chemical bonds of biomolecules, such as sugars and lipids. Autotrophic organisms, namely plants, algae, and photosynthetic and chemosynthetic bacteria, convert inorganic materials into such biomolecules by...

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